Aparicio, F., Pallas, V., & Sanchez-Navarro, J. (2010). Implication of the C terminus of the Prunus necrotic ringspot virus movement protein in cell-to-cell transport and in its interaction with the coat protein. Journal of General Virology, 91(7), 1865-1870. doi:10.1099/vir.0.019950-0
Aparicio, F., Sánchez-Navarro, J. A., & Pallás, V. (2006). In vitro and in vivo mapping of the Prunus necrotic ringspot virus coat protein C-terminal dimerization domain by bimolecular fluorescence complementation. Journal of General Virology, 87(6), 1745-1750. doi:10.1099/vir.0.81696-0
Bastianel, M., Novelli, V. M., Kitajima, E. W., Kubo, K. S., Bassanezi, R. B., Machado, M. A., & Freitas-Astúa, J. (2010). Citrus Leprosis: Centennial of an Unusual Mite–Virus Pathosystem. Plant Disease, 94(3), 284-292. doi:10.1094/pdis-94-3-0284
[+]
Aparicio, F., Pallas, V., & Sanchez-Navarro, J. (2010). Implication of the C terminus of the Prunus necrotic ringspot virus movement protein in cell-to-cell transport and in its interaction with the coat protein. Journal of General Virology, 91(7), 1865-1870. doi:10.1099/vir.0.019950-0
Aparicio, F., Sánchez-Navarro, J. A., & Pallás, V. (2006). In vitro and in vivo mapping of the Prunus necrotic ringspot virus coat protein C-terminal dimerization domain by bimolecular fluorescence complementation. Journal of General Virology, 87(6), 1745-1750. doi:10.1099/vir.0.81696-0
Bastianel, M., Novelli, V. M., Kitajima, E. W., Kubo, K. S., Bassanezi, R. B., Machado, M. A., & Freitas-Astúa, J. (2010). Citrus Leprosis: Centennial of an Unusual Mite–Virus Pathosystem. Plant Disease, 94(3), 284-292. doi:10.1094/pdis-94-3-0284
Bejerman, N., Giolitti, F., de Breuil, S., Trucco, V., Nome, C., Lenardon, S., & Dietzgen, R. G. (2015). Complete genome sequence and integrated protein localization and interaction map for alfalfa dwarf virus, which combines properties of both cytoplasmic and nuclear plant rhabdoviruses. Virology, 483, 275-283. doi:10.1016/j.virol.2015.05.001
Beltran-Beltran, A. K., Santillán-Galicia, M. T., Guzmán-Franco, A. W., Teliz-Ortiz, D., Gutiérrez-Espinoza, M. A., Romero-Rosales, F., & Robles-García, P. L. (2020). Incidence of Citrus leprosis virus C and Orchid fleck dichorhavirus Citrus Strain in Mites of the Genus Brevipalpus in Mexico. Journal of Economic Entomology, 113(3), 1576-1581. doi:10.1093/jee/toaa007
Bordier, C. (1981). Phase separation of integral membrane proteins in Triton X-114 solution. Journal of Biological Chemistry, 256(4), 1604-1607. doi:10.1016/s0021-9258(19)69848-0
Brown, J. K., Idris, A. M., Alteri, C., & Stenger, D. C. (2002). Emergence of a New Cucurbit-Infecting Begomovirus Species Capable of Forming Viable Reassortants with Related Viruses in theSquash leaf curl virusCluster. Phytopathology®, 92(7), 734-742. doi:10.1094/phyto.2002.92.7.734
Canto, T., & Palukaitis, P. (2002). Novel
N
Gene-Associated, Temperature-Independent Resistance to the Movement of
Tobacco Mosaic Virus
Vectors Neutralized by a
Cucumber Mosaic Virus
RNA1 Transgene. Journal of Virology, 76(24), 12908-12916. doi:10.1128/jvi.76.24.12908-12916.2002
Chabi-Jesus, C., Ramos-González, P. L., Tassi, A. D., Guerra-Peraza, O., Kitajima, E. W., Harakava, R., … Freitas-Astúa, J. (2018). Identification and Characterization of Citrus Chlorotic Spot Virus, a New Dichorhavirus Associated with Citrus Leprosis-Like Symptoms. Plant Disease, 102(8), 1588-1598. doi:10.1094/pdis-09-17-1425-re
Chapman, S., Hills, G., Watts, J., & Baulcombe, D. (1992). Mutational analysis of the coat protein gene of potato virus X: Effects on virion morphology and viral pathogenicity. Virology, 191(1), 223-230. doi:10.1016/0042-6822(92)90183-p
Cook, G., Kirkman, W., Clase, R., Steyn, C., Basson, E., Fourie, P. H., … Hattingh, V. (2019). Orchid fleck virus associated with the first case of citrus leprosis-N in South Africa. European Journal of Plant Pathology, 155(4), 1373-1379. doi:10.1007/s10658-019-01854-4
Cruz-Jaramillo, J., Ruiz-Medrano, R., Rojas-Morales, L., López-Buenfil, J., Morales-Galván, O., Chavarín-Palacio, C., … Xoconostle-Cázares, B. (2014). Characterization of a Proposed Dichorhavirus Associated with the Citrus Leprosis Disease and Analysis of the Host Response. Viruses, 6(7), 2602-2622. doi:10.3390/v6072602
Deng, M., Bragg, J. N., Ruzin, S., Schichnes, D., King, D., Goodin, M. M., & Jackson, A. O. (2007). Role of the Sonchus Yellow Net Virus N Protein in Formation of Nuclear Viroplasms. Journal of Virology, 81(10), 5362-5374. doi:10.1128/jvi.02349-06
Dietzgen, R. G., Bejerman, N. E., Goodin, M. M., Higgins, C. M., Huot, O. B., Kondo, H., … Whitfield, A. E. (2020). Diversity and epidemiology of plant rhabdoviruses. Virus Research, 281, 197942. doi:10.1016/j.virusres.2020.197942
Dietzgen, R. G., Freitas-Astúa, J., Chabi-Jesus, C., Ramos-González, P. L., Goodin, M. M., Kondo, H., … Kitajima, E. W. (2018). Dichorhaviruses in their Host Plants and Mite Vectors. Advances in Virus Research, 119-148. doi:10.1016/bs.aivir.2018.06.001
Forster, R. L. S., Beck, D. L., Guilford, P. J., Voot, D. M., Van Dolleweerd, C. J., & Andersen, M. T. (1992). Thecoat protein of white clover mosaic potexvirus has a role in facilitating cell-to-cell transport in plants. Virology, 191(1), 480-484. doi:10.1016/0042-6822(92)90215-b
Freitas-Astúa, J., Moreira, L., Rivera, C., Rodríguez, C. M., & Kitajima, E. W. (2002). First Report of Orchid fleck virus in Costa Rica. Plant Disease, 86(12), 1402-1402. doi:10.1094/pdis.2002.86.12.1402d
Freitas-Astúa, J., Ramos-González, P. L., Arena, G. D., Tassi, A. D., & Kitajima, E. W. (2018). Brevipalpus-transmitted viruses: parallelism beyond a common vector or convergent evolution of distantly related pathogens? Current Opinion in Virology, 33, 66-73. doi:10.1016/j.coviro.2018.07.010
Genovés, A., Pallás, V., & Navarro, J. A. (2011). Contribution of Topology Determinants of a Viral Movement Protein to Its Membrane Association, Intracellular Traffic, and Viral Cell-to-Cell Movement. Journal of Virology, 85(15), 7797-7809. doi:10.1128/jvi.02465-10
Ghosh, D., Brooks, R. E., Wang, R., Lesnaw, J., & Goodin, M. M. (2008). Cloning and subcellular localization of the phosphoprotein and nucleocapsid proteins of Potato yellow dwarf virus, type species of the genus Nucleorhabdovirus. Virus Research, 135(1), 26-35. doi:10.1016/j.virusres.2008.02.003
Goodin, M. M., Austin, J., Tobias, R., Fujita, M., Morales, C., & Jackson, A. O. (2001). Interactions and Nuclear Import of the N and P Proteins of Sonchus Yellow Net Virus, a Plant Nucleorhabdovirus. Journal of Virology, 75(19), 9393-9406. doi:10.1128/jvi.75.19.9393-9406.2001
Goodin, M. M., Chakrabarty, R., Yelton, S., Martin, K., Clark, A., & Brooks, R. (2007). Membrane and protein dynamics in live plant nuclei infected with Sonchus yellow net virus, a plant-adapted rhabdovirus. Journal of General Virology, 88(6), 1810-1820. doi:10.1099/vir.0.82698-0
Goodin, M. M., Dietzgen, R. G., Schichnes, D., Ruzin, S., & Jackson, A. O. (2002). pGD vectors: versatile tools for the expression of green and red fluorescent protein fusions in agroinfiltrated plant leaves. The Plant Journal, 31(3), 375-383. doi:10.1046/j.1365-313x.2002.01360.x
Hofmann, C., Niehl, A., Sambade, A., Steinmetz, A., & Heinlein, M. (2009). Inhibition of Tobacco Mosaic Virus Movement by Expression of an Actin-Binding Protein. Plant Physiology, 149(4), 1810-1823. doi:10.1104/pp.108.133827
Huang, Y.-W., Geng, Y.-F., Ying, X.-B., Chen, X.-Y., & Fang, R.-X. (2005). Identification of a Movement Protein of Rice Yellow Stunt Rhabdovirus. Journal of Virology, 79(4), 2108-2114. doi:10.1128/jvi.79.4.2108-2114.2005
Idris, A. M., & Brown, J. K. (2004). Cotton leaf crumple virus Is a Distinct Western Hemisphere Begomovirus Species with Complex Evolutionary Relationships Indicative of Recombination and Reassortment. Phytopathology®, 94(10), 1068-1074. doi:10.1094/phyto.2004.94.10.1068
Idris, A. M., Mills-Lujan, K., Martin, K., & Brown, J. K. (2008). Melon Chlorotic Leaf Curl Virus
: Characterization and Differential Reassortment with Closest Relatives Reveal Adaptive Virulence in the
Squash Leaf Curl Virus
Clade and Host Shifting by the Host-Restricted
Bean Calico Mosaic Virus. Journal of Virology, 82(4), 1959-1967. doi:10.1128/jvi.01992-07
Kang, S.-H., Bak, A., Kim, O.-K., & Folimonova, S. Y. (2015). Membrane association of a nonconserved viral protein confers virus ability to extend its host range. Virology, 482, 208-217. doi:10.1016/j.virol.2015.03.047
Kawakami, S., Watanabe, Y., & Beachy, R. N. (2004). Tobacco mosaic virus infection spreads cell to cell as intact replication complexes. Proceedings of the National Academy of Sciences, 101(16), 6291-6296. doi:10.1073/pnas.0401221101
Kondo, H., Chiba, S., Andika, I. B., Maruyama, K., Tamada, T., & Suzuki, N. (2013). Orchid Fleck Virus Structural Proteins N and P Form Intranuclear Viroplasm-Like Structures in the Absence of Viral Infection. Journal of Virology, 87(13), 7423-7434. doi:10.1128/jvi.00270-13
Kondo, H., Maeda, T., & Tamada, T. (2003). Orchid Fleck Virus: Brevipalpus californicus Mite Transmission, Biological Properties and Genome Structure. Experimental and Applied Acarology, 30(1-3), 215-223. doi:10.1023/b:appa.0000006550.88615.10
Kondo, H., Maruyama, K., Chiba, S., Andika, I. B., & Suzuki, N. (2014). Transcriptional mapping of the messenger and leader RNAs of orchid fleck virus, a bisegmented negative-strand RNA virus. Virology, 452-453, 166-174. doi:10.1016/j.virol.2014.01.007
Leastro, M. O., Castro, D. Y. O., Freitas-Astúa, J., Kitajima, E. W., Pallás, V., & Sánchez-Navarro, J. Á. (2020). Citrus Leprosis Virus C Encodes Three Proteins With Gene Silencing Suppression Activity. Frontiers in Microbiology, 11. doi:10.3389/fmicb.2020.01231
Leastro, M. O., De Oliveira, A. S., Pallás, V., Sánchez-Navarro, J. A., Kormelink, R., & Resende, R. O. (2017). The NSm proteins of phylogenetically related tospoviruses trigger Sw-5b–mediated resistance dissociated of their cell-to-cell movement function. Virus Research, 240, 25-34. doi:10.1016/j.virusres.2017.07.019
Leastro, M. O., Pallás, V., Resende, R. O., & Sánchez-Navarro, J. A. (2017). The functional analysis of distinct tospovirus movement proteins (NS M ) reveals different capabilities in tubule formation, cell-to-cell and systemic virus movement among the tospovirus species. Virus Research, 227, 57-68. doi:10.1016/j.virusres.2016.09.023
Leastro, M. O., Kitajima, E. W., Silva, M. S., Resende, R. O., & Freitas-Astúa, J. (2018). Dissecting the Subcellular Localization, Intracellular Trafficking, Interactions, Membrane Association, and Topology of Citrus Leprosis Virus C Proteins. Frontiers in Plant Science, 9. doi:10.3389/fpls.2018.01299
Leastro, M. O., Pallás, V., Resende, R. O., & Sánchez-Navarro, J. A. (2015). The movement proteins (NSm) of distinct tospoviruses peripherally associate with cellular membranes and interact with homologous and heterologous NSm and nucleocapsid proteins. Virology, 478, 39-49. doi:10.1016/j.virol.2015.01.031
Sue Loesch-Fries, L., Halk, E. L., Nelson, S. E., & Krahn, K. J. (1985). Human leukocyte interferon does not inhibit alfalfa mosaic virus in protoplasts or tobacco tissue. Virology, 143(2), 626-629. doi:10.1016/0042-6822(85)90402-7
Mann, K. S., Bejerman, N., Johnson, K. N., & Dietzgen, R. G. (2016). Cytorhabdovirus P3 genes encode 30K-like cell-to-cell movement proteins. Virology, 489, 20-33. doi:10.1016/j.virol.2015.11.028
Martin, K. M., Dietzgen, R. G., Wang, R., & Goodin, M. M. (2012). Lettuce necrotic yellows cytorhabdovirus protein localization and interaction map, and comparison with nucleorhabdoviruses. Journal of General Virology, 93(4), 906-914. doi:10.1099/vir.0.038034-0
Martínez-Gil, L., Sánchez-Navarro, J. A., Cruz, A., Pallás, V., Pérez-Gil, J., & Mingarro, I. (2009). Plant Virus Cell-to-Cell Movement Is Not Dependent on the Transmembrane Disposition of Its Movement Protein. Journal of Virology, 83(11), 5535-5543. doi:10.1128/jvi.00393-09
Martínez-Pérez, M., Navarro, J. A., Pallás, V., & Sánchez-Navarro, J. A. (2019). A sensitive and rapid RNA silencing suppressor activity assay based on alfalfa mosaic virus expression vector. Virus Research, 272, 197733. doi:10.1016/j.virusres.2019.197733
Melcher, U. (2000). The ‘30K’ superfamily of viral movement proteins. Microbiology, 81(1), 257-266. doi:10.1099/0022-1317-81-1-257
Moreno, A. B., & López-Moya, J. J. (2020). When Viruses Play Team Sports: Mixed Infections in Plants. Phytopathology®, 110(1), 29-48. doi:10.1094/phyto-07-19-0250-fi
Nagano, H., Mise, K., Furusawa, I., & Okuno, T. (2001). Conversion in the Requirement of Coat Protein in Cell-to-Cell Movement Mediated by the Cucumber Mosaic Virus Movement Protein. Journal of Virology, 75(17), 8045-8053. doi:10.1128/jvi.75.17.8045-8053.2001
Nagano, H., Okuno, T., Mise, K., & Furusawa, I. (1997). Deletion of the C-terminal 33 amino acids of cucumber mosaic virus movement protein enables a chimeric brome mosaic virus to move from cell to cell. Journal of Virology, 71(3), 2270-2276. doi:10.1128/jvi.71.3.2270-2276.1997
Navarro, J. A., Sanchez-Navarro, J. A., & Pallas, V. (2019). Key checkpoints in the movement of plant viruses through the host. Advances in Virus Research, 1-64. doi:10.1016/bs.aivir.2019.05.001
Peiró, A., Cañizares, M. C., Rubio, L., López, C., Moriones, E., Aramburu, J., & Sánchez-Navarro, J. (2014). The movement protein (NSm) ofTomato spotted wilt virusis the avirulence determinant in the tomatoSw-5gene-based resistance. Molecular Plant Pathology, 15(8), 802-813. doi:10.1111/mpp.12142
Peiro, A., Martinez-Gil, L., Tamborero, S., Pallas, V., Sanchez-Navarro, J. A., Mingarro, I., & Simon, A. (2013). The Tobacco mosaic virus Movement Protein Associates with but Does Not Integrate into Biological Membranes. Journal of Virology, 88(5), 3016-3026. doi:10.1128/jvi.03648-13
Peremyslov, V. V., Pan, Y.-W., & Dolja, V. V. (2004). Movement Protein of a Closterovirus Is a Type III Integral Transmembrane Protein Localized to the EndoplasmicReticulum. Journal of Virology, 78(7), 3704-3709. doi:10.1128/jvi.78.7.3704-3709.2004
Edgerton, B. (1996). A new bacilliform virus in Australian Cherax destructor (Decapoda:Parastacidae) with notes on Cherax quadricarinatus bacilliform virus (= Cherax baculovirus). Diseases of Aquatic Organisms, 27, 43-52. doi:10.3354/dao027043
Pitzalis, N., & Heinlein, M. (2017). The roles of membranes and associated cytoskeleton in plant virus replication and cell-to-cell movement. Journal of Experimental Botany, 69(1), 117-132. doi:10.1093/jxb/erx334
Powers, J. G., Sit, T. L., Qu, F., Morris, T. J., Kim, K.-H., & Lommel, S. A. (2008). A Versatile Assay for the Identification of RNA Silencing Suppressors Based on Complementation of Viral Movement. Molecular Plant-Microbe Interactions®, 21(7), 879-890. doi:10.1094/mpmi-21-7-0879
Shankhwar, N., Singh, R. K., Kothiyal, G. P., Perumal, A., & Srinivasan, A. (2014). Evolution of Magnetic Properties of ${\hbox{CaO}}\hbox{-}{\hbox{P}}_{2}{\hbox{O}}_{5}\hbox{-}{\hbox{Na}}_{2}{\hbox{O}}\hbox{-}{\hbox{Fe}}_{2}{\hbox{O}}_{3}\hbox{-}{\hbox{SiO}}_{2}$ Glass Upon Heat Treatment. IEEE Transactions on Magnetics, 50(1), 1-4. doi:10.1109/tmag.2013.2278570
Ramalho, T. O., Figueira, A. R., Sotero, A. J., Wang, R., Geraldino Duarte, P. S., Farman, M., & Goodin, M. M. (2014). Characterization of Coffee ringspot virus-Lavras: A model for an emerging threat to coffee production and quality. Virology, 464-465, 385-396. doi:10.1016/j.virol.2014.07.031
Ramos-González, P. L., Chabi-Jesus, C., Guerra-Peraza, O., Tassi, A. D., Kitajima, E. W., Harakava, R., … Freitas-Astúa, J. (2017). Citrus leprosis virus N: A New Dichorhavirus Causing Citrus Leprosis Disease. Phytopathology®, 107(8), 963-976. doi:10.1094/phyto-02-17-0042-r
Ritzenthaler, C., & Hofmann, C. (s. f.). Tubule-Guided Movement of Plant Viruses. Plant Cell Monographs, 63-83. doi:10.1007/7089_2006_105
Roossinck, M. J. (1997). MECHANISMS OF PLANTVIRUS EVOLUTION. Annual Review of Phytopathology, 35(1), 191-209. doi:10.1146/annurev.phyto.35.1.191
Roy, A., Hartung, J. S., Schneider, W. L., Shao, J., Leon, G., Melzer, M. J., … Brlansky, R. H. (2015). Role Bending: Complex Relationships Between Viruses, Hosts, and Vectors Related to Citrus Leprosis, an Emerging Disease. Phytopathology®, 105(7), 1013-1025. doi:10.1094/phyto-12-14-0375-fi
Roy, A., Stone, A. L., Shao, J., Otero-Colina, G., Wei, G., Choudhary, N., … Brlansky, R. H. (2015). Identification and Molecular Characterization of Nuclear Citrus leprosis virus, a Member of the Proposed Dichorhavirus Genus Infecting Multiple Citrus Species in Mexico. Phytopathology®, 105(4), 564-575. doi:10.1094/phyto-09-14-0245-r
Sambade, A., & Heinlein, M. (2009). Approaching the cellular mechanism that supports the intercellular spread ofTobacco mosaic virus. Plant Signaling & Behavior, 4(1), 35-38. doi:10.4161/psb.4.1.7253
Sanchez-Navarro, J., Miglino, R., Ragozzino, A., & Bol, J. F. (2001). Engineering of Alfalfa mosaic virus RNA 3 into an expression vector. Archives of Virology, 146(5), 923-939. doi:10.1007/s007050170125
Sánchez-Navarro, J. A., & Bol, J. F. (2001). Role of the Alfalfa mosaic virus Movement Protein and Coat Protein in Virus Transport. Molecular Plant-Microbe Interactions®, 14(9), 1051-1062. doi:10.1094/mpmi.2001.14.9.1051
Sánchez-Navarro, J. A., Carmen Herranz, M., & Pallás, V. (2006). Cell-to-cell movement of Alfalfa mosaic virus can be mediated by the movement proteins of Ilar-, bromo-, cucumo-, tobamo- and comoviruses and does not require virion formation. Virology, 346(1), 66-73. doi:10.1016/j.virol.2005.10.024
Sánchez-Velázquez, E. J., Santillán-Galicia, M. T., Novelli, V. M., Nunes, M. A., Mora-Aguilera, G., Valdez-Carrasco, J. M., … Freitas-Astúa, J. (2015). Diversity and Genetic Variation among Brevipalpus Populations from Brazil and Mexico. PLOS ONE, 10(7), e0133861. doi:10.1371/journal.pone.0133861
Sauvêtre, P., Veniant, E., Croq, G., Tassi, A. D., Kitajima, E. W., Chabi-Jesus, C., … Navia, D. (2018). First Report of Orchid Fleck Virus in the Orchid Collection of Jardin du Luxembourg, Paris, France. Plant Disease, 102(12), 2670-2670. doi:10.1094/pdis-02-18-0371-pdn
Takeda, A., Kaido, M., Okuno, T., & Mise, K. (2004). The C terminus of the movement protein of Brome mosaic virus controls the requirement for coat protein in cell-to-cell movement and plays a role in long-distance movement. Journal of General Virology, 85(6), 1751-1761. doi:10.1099/vir.0.79976-0
Taschner, P. E. M., Van Der Kuyl, A. C., Neeleman, L., & Bol, J. F. (1991). Replication of an incomplete alfalfa mosaic virus genome in plants transformed with viral replicase genes. Virology, 181(2), 445-450. doi:10.1016/0042-6822(91)90876-d
Tsai, C.-W., Redinbaugh, M. G., Willie, K. J., Reed, S., Goodin, M., & Hogenhout, S. A. (2005). Complete Genome Sequence and In Planta Subcellular Localization of Maize Fine Streak Virus Proteins. Journal of Virology, 79(9), 5304-5314. doi:10.1128/jvi.79.9.5304-5314.2005
Van Dun, C. M. P., Van Vloten-Doting, L., & Bol, J. F. (1988). Expression of alfalfa mosaic virus cDNA1 and 2 in transgenic Tobacco plants. Virology, 163(2), 572-578. doi:10.1016/0042-6822(88)90298-x
Wolf, S., Lucas, W. J., Deom, C. M., & Beachy, R. N. (1989). Movement Protein of Tobacco Mosaic Virus Modifies Plasmodesmatal Size Exclusion Limit. Science, 246(4928), 377-379. doi:10.1126/science.246.4928.377
Zamyatnin, A. A., Solovyev, A. G., Bozhkov, P. V., Valkonen, J. P. T., Morozov, S. Y., & Savenkov, E. I. (2006). Assessment of the integral membrane protein topology in living cells. The Plant Journal, 46(1), 145-154. doi:10.1111/j.1365-313x.2006.02674.x
[-]